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E-ANT: A Large-Scale Dataset for Efficient Automatic GUI NavigaTion

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arxiv 2406.14250 v3 pith:BYFXPIGH submitted 2024-06-20 cs.CV cs.HC

classification cs.CVcs.HC
keywords navigationdatasete-anthumandevelopmenthighlanguagelarge
verification ladder T0 review T1 audit T2 compute T3 formal
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Online GUI navigation on mobile devices has driven a lot of attention recent years since it contributes to many real-world applications. With the rapid development of large language models (LLM), multimodal large language models (MLLM) have tremendous potential on this task. However, existing MLLMs need high quality data to improve its abilities of making the correct navigation decisions according to the human user inputs. In this paper, we developed a novel and highly valuable dataset, named \textbf{E-ANT}, as the first Chinese GUI navigation dataset that contains real human behaviour and high quality screenshots with annotations, containing nearly 40,000 real human traces over 5000+ different tinyAPPs. Furthermore, we evaluate various powerful MLLMs on E-ANT and show their experiments results with sufficient ablations. We believe that our proposed dataset will be beneficial for both the evaluation and development of GUI navigation and LLM/MLLM decision-making capabilities.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. TransBench: Breaking Barriers for Transferable Graphical User Interface Agents in Dynamic Digital Environments

    cs.HC 2025-05 conditional novelty 6.0 of 10

    TransBench is a new benchmark of 1,459 screenshots and 22,000 grounding instructions for measuring how well GUI agents transfer across app versions, platforms, and applications.

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